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Sunlight-Powered Reverse Water Gas Shift Reaction Catalysed by Plasmonic Au/TiO(2) Nanocatalysts: Effects of Au Particle Size on the Activity and Selectivity

This study reports the low temperature and low pressure conversion (up to 160 °C, p = 3.5 bar) of CO(2) and H(2) to CO using plasmonic Au/TiO(2) nanocatalysts and mildly concentrated artificial sunlight as the sole energy source (up to 13.9 kW·m(−2) = 13.9 suns). To distinguish between photothermal...

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Detalles Bibliográficos
Autores principales: Volders, Jordi, Elen, Ken, Raes, Arno, Ninakanti, Rajeshreddy, Kelchtermans, An-Sofie, Sastre, Francesc, Hardy, An, Cool, Pegie, Verbruggen, Sammy W., Buskens, Pascal, Van Bael, Marlies K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9738324/
https://www.ncbi.nlm.nih.gov/pubmed/36500776
http://dx.doi.org/10.3390/nano12234153
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author Volders, Jordi
Elen, Ken
Raes, Arno
Ninakanti, Rajeshreddy
Kelchtermans, An-Sofie
Sastre, Francesc
Hardy, An
Cool, Pegie
Verbruggen, Sammy W.
Buskens, Pascal
Van Bael, Marlies K.
author_facet Volders, Jordi
Elen, Ken
Raes, Arno
Ninakanti, Rajeshreddy
Kelchtermans, An-Sofie
Sastre, Francesc
Hardy, An
Cool, Pegie
Verbruggen, Sammy W.
Buskens, Pascal
Van Bael, Marlies K.
author_sort Volders, Jordi
collection PubMed
description This study reports the low temperature and low pressure conversion (up to 160 °C, p = 3.5 bar) of CO(2) and H(2) to CO using plasmonic Au/TiO(2) nanocatalysts and mildly concentrated artificial sunlight as the sole energy source (up to 13.9 kW·m(−2) = 13.9 suns). To distinguish between photothermal and non-thermal contributors, we investigated the impact of the Au nanoparticle size and light intensity on the activity and selectivity of the catalyst. A comparative study between P25 TiO(2)-supported Au nanocatalysts of a size of 6 nm and 16 nm displayed a 15 times higher activity for the smaller particles, which can only partially be attributed to the higher Au surface area. Other factors that may play a role are e.g., the electronic contact between Au and TiO(2) and the ratio between plasmonic absorption and scattering. Both catalysts displayed ≥84% selectivity for CO (side product is CH(4)). Furthermore, we demonstrated that the catalytic activity of Au/TiO(2) increases exponentially with increasing light intensity, which indicated the presence of a photothermal contributor. In dark, however, both Au/TiO(2) catalysts solely produced CH(4) at the same catalyst bed temperature (160 °C). We propose that the difference in selectivity is caused by the promotion of CO desorption through charge transfer of plasmon generated charges (as a non-thermal contributor).
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spelling pubmed-97383242022-12-11 Sunlight-Powered Reverse Water Gas Shift Reaction Catalysed by Plasmonic Au/TiO(2) Nanocatalysts: Effects of Au Particle Size on the Activity and Selectivity Volders, Jordi Elen, Ken Raes, Arno Ninakanti, Rajeshreddy Kelchtermans, An-Sofie Sastre, Francesc Hardy, An Cool, Pegie Verbruggen, Sammy W. Buskens, Pascal Van Bael, Marlies K. Nanomaterials (Basel) Article This study reports the low temperature and low pressure conversion (up to 160 °C, p = 3.5 bar) of CO(2) and H(2) to CO using plasmonic Au/TiO(2) nanocatalysts and mildly concentrated artificial sunlight as the sole energy source (up to 13.9 kW·m(−2) = 13.9 suns). To distinguish between photothermal and non-thermal contributors, we investigated the impact of the Au nanoparticle size and light intensity on the activity and selectivity of the catalyst. A comparative study between P25 TiO(2)-supported Au nanocatalysts of a size of 6 nm and 16 nm displayed a 15 times higher activity for the smaller particles, which can only partially be attributed to the higher Au surface area. Other factors that may play a role are e.g., the electronic contact between Au and TiO(2) and the ratio between plasmonic absorption and scattering. Both catalysts displayed ≥84% selectivity for CO (side product is CH(4)). Furthermore, we demonstrated that the catalytic activity of Au/TiO(2) increases exponentially with increasing light intensity, which indicated the presence of a photothermal contributor. In dark, however, both Au/TiO(2) catalysts solely produced CH(4) at the same catalyst bed temperature (160 °C). We propose that the difference in selectivity is caused by the promotion of CO desorption through charge transfer of plasmon generated charges (as a non-thermal contributor). MDPI 2022-11-23 /pmc/articles/PMC9738324/ /pubmed/36500776 http://dx.doi.org/10.3390/nano12234153 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Volders, Jordi
Elen, Ken
Raes, Arno
Ninakanti, Rajeshreddy
Kelchtermans, An-Sofie
Sastre, Francesc
Hardy, An
Cool, Pegie
Verbruggen, Sammy W.
Buskens, Pascal
Van Bael, Marlies K.
Sunlight-Powered Reverse Water Gas Shift Reaction Catalysed by Plasmonic Au/TiO(2) Nanocatalysts: Effects of Au Particle Size on the Activity and Selectivity
title Sunlight-Powered Reverse Water Gas Shift Reaction Catalysed by Plasmonic Au/TiO(2) Nanocatalysts: Effects of Au Particle Size on the Activity and Selectivity
title_full Sunlight-Powered Reverse Water Gas Shift Reaction Catalysed by Plasmonic Au/TiO(2) Nanocatalysts: Effects of Au Particle Size on the Activity and Selectivity
title_fullStr Sunlight-Powered Reverse Water Gas Shift Reaction Catalysed by Plasmonic Au/TiO(2) Nanocatalysts: Effects of Au Particle Size on the Activity and Selectivity
title_full_unstemmed Sunlight-Powered Reverse Water Gas Shift Reaction Catalysed by Plasmonic Au/TiO(2) Nanocatalysts: Effects of Au Particle Size on the Activity and Selectivity
title_short Sunlight-Powered Reverse Water Gas Shift Reaction Catalysed by Plasmonic Au/TiO(2) Nanocatalysts: Effects of Au Particle Size on the Activity and Selectivity
title_sort sunlight-powered reverse water gas shift reaction catalysed by plasmonic au/tio(2) nanocatalysts: effects of au particle size on the activity and selectivity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9738324/
https://www.ncbi.nlm.nih.gov/pubmed/36500776
http://dx.doi.org/10.3390/nano12234153
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